Seismic detection device

By using modularly designed support, cooling, and fixing components, the problem of insufficient heat dissipation of seismic detection devices in high-temperature environments is solved, achieving efficient heat dissipation and device stability, thereby improving the reliability and durability of seismic detection.

CN121995441APending Publication Date: 2026-05-08SCI & EDUCATION CENT OF THE FIRST EXPLORATION BUREAU OF CHINA COAL GEOLOGY ADMINISTRATION
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SCI & EDUCATION CENT OF THE FIRST EXPLORATION BUREAU OF CHINA COAL GEOLOGY ADMINISTRATION
Filing Date
2026-03-09
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Existing seismic detection devices suffer from insufficient heat dissipation in high-temperature environments, causing the temperature of core components to exceed the operating threshold, which affects the reliability and stability of data acquisition.

Method used

The modular design of the support, cooling, and fixing components is achieved by using support rods that are tilted to the ground to absorb vibration energy, and damping blocks to reduce device sway. The refrigeration unit and fan work together to achieve efficient heat dissipation. The fixing components ensure the stability of the device, and all components work together to maintain the temperature within a suitable range.

Benefits of technology

It improves the heat dissipation efficiency of the device in high-temperature environments, reduces device vibration, enhances reliability and durability in complex seismic environments, and ensures the accuracy and reliability of data acquisition.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121995441A_ABST
    Figure CN121995441A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of seismic detection, in particular to a seismic detection device which comprises a detection equipment assembly, a supporting assembly is arranged at the lower end of the detection equipment assembly, a refrigeration assembly is embedded in the detection equipment assembly, and fixing assemblies are arranged on the left side and the right side of the front end of the detection equipment assembly. A lock body is embedded in the front end of the fixing assembly, a reinforcing assembly is embedded in the end, close to the center of the detection equipment assembly, of the rear end of the lock body, and a containing groove is formed in the inner side of the detection equipment assembly. In the whole process, the base is stabilized through the supporting assembly, the fixing assembly is rigidly connected, the refrigerating machine works cooperatively through an internal compressor, a condenser and other components, refrigerating fluid is compressed, condensed, expanded and evaporated to circulate, heat transfer is achieved, and the device is cooled. And after the fan is electrified, the cooling effect is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of earthquake detection technology, and more particularly to an earthquake detection device. Background Technology

[0003] Existing devices mostly rely on natural heat dissipation or simple fan cooling (such as an axial fan + heat sink combination). When the ambient temperature is >30℃, the heat exchange efficiency drops to below 15W / ℃. Meanwhile, highly integrated sensors (such as MEMS accelerometers with power consumption >4W) experience core component temperatures exceeding 65℃ after 1.5 hours of continuous operation, exceeding the chip's operating temperature threshold (-40℃~+60℃). A certain model of seismograph (REF ED-200) experienced 12 data anomalies during the high temperatures of summer 2024 due to insufficient heat dissipation. Summary of the Invention

[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing an earthquake detection device.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: it includes a detection equipment component, a support component is provided at the lower end of the detection equipment component, a cooling component is embedded inside the detection equipment component, fixing components are provided on both the left and right sides of the front end of the detection equipment component, a lock body is embedded at the front end of the fixing component, a reinforcing component is embedded at the rear end of the lock body near the center of the detection equipment component, and a placement groove is provided on the inner side of the detection equipment component.

[0006] Preferably, the testing equipment assembly includes a lower housing, an upper housing is hinged to the upper end of the lower housing, handles are fixedly connected to both the left and right ends of the lower housing, fixing rings are fixedly connected to the front and rear ends of the lower end of the lower housing, and a mounting plate is fixedly connected to the upper inner side of the upper housing.

[0007] Preferably, the support assembly includes a placement groove, with mounting rods placed at both ends of the inner wall of the placement groove. Mounting blocks are fixedly connected to the four corners at the lower end of the detection equipment assembly. Support rods are embedded in the inner side of the mounting rods, and damping blocks are fixedly connected to the lower ends of the support rods.

[0008] Preferably, the refrigeration assembly includes a fixing plate, a refrigeration unit is fixedly connected to the lower rear side of the fixing plate, an extension frame is provided at the front end of the refrigeration unit, a fan is fixedly connected to the inner side of the extension frame, and a refrigeration block is provided at the front end of the fan.

[0009] Preferably, the fixing assembly includes a fixing frame, a rotating rod is embedded in the inner side of the fixing frame, a fixing rod is fixedly connected to the middle of the front end of the fixing frame, locking frames are fixedly connected to both sides of the rotating rod, a tensioning frame is rotatably connected to the outer side of the locking frame, a reinforcing rod is in close contact with the middle of the outer side of the tensioning frame, a connecting plate is fixedly connected to the lower end of the reinforcing rod, screws are threaded to both the left and right sides of the front end of the connecting plate, and the screws penetrate the connecting plate and the lower housing in the testing equipment assembly, the screws are threadedly connected to the lower housing in the testing equipment assembly, and a lock body is embedded in the front end of the fixing assembly.

[0010] Preferably, the reinforcement component includes a connecting frame, with fixing bolts threaded to the four corners at the front end of the connecting frame, a rotating block embedded in the inner side of the connecting frame, a locking hole in the front end of the rotating block, a mounting frame fixedly connected to the rear end of the connecting frame, and a moving rod slidably connected to the inner side of the mounting frame.

[0011] Preferably, the mounting plate is rectangular, and the lower end of the mounting plate has heat dissipation holes, which are arranged in a rectangular array below the mounting plate.

[0012] Preferably, the support rod is inclined at 15 degrees to the ground and is cylindrical.

[0013] Preferably, the cooling block is made of a copper plate and is fixedly connected to the fixing plate.

[0014] Preferably, the left end of the fixing rod has a mounting hole in the middle, and the hook of the lock body passes through the mounting hole of the fixing rod.

[0015] The present invention has the following beneficial effects:

[0016] Compared with existing technologies, this earthquake detection device, through the setting of support components, fixing components and cooling components, achieves heat transfer and cools the device by stabilizing the base through the support components, rigidly connecting the fixing components, and the cooling machine working together through internal compressors, condensers and other components to compress, condense, expand and evaporate the refrigerant in a cycle; after the fan is powered on, the cooling effect is improved.

[0017] Compared with existing technologies, this earthquake detection device, through the installation block, support rod, and damping block, provides a mounting base for the support rod during installation. The inclined setting allows the damping block to fit tightly against the ground. Furthermore, because it is inclined at 15 degrees to the ground, it can disperse some of the force to the ground when subjected to earthquake impact, reducing device sway. The damping block is made of elastic material, which absorbs and dissipates vibration energy through its own compression and rebound reciprocating motion when the device is vibrated. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0019] Figure 2 For the present invention Figure 1 A top-down view of the unfolded structure of the inspection equipment components;

[0020] Figure 3 For the present invention Figure 2 A schematic diagram of the structure at point A;

[0021] Figure 4 For the present invention Figure 2 Schematic diagram of the structure at point B

[0022] Figure 5 This is a schematic diagram of the installation and unfolding of the support component of the present invention;

[0023] Figure 6 This is a schematic diagram of the installation structure of the fixing component of the present invention;

[0024] Figure 7 This is a schematic diagram of the installation structure of the reinforcement component of the present invention.

[0025] Legend:

[0026] 1. Testing equipment components; 101. Lower housing; 102. Upper housing; 103. Handle; 104. Retaining ring; 105. Mounting plate;

[0027] 2. Support assembly; 201. Placement slot; 202. Mounting rod; 203. Mounting block; 204. Support rod; 205. Damping block;

[0028] 3. Refrigeration components; 301. Fixing plate; 302. Refrigeration unit; 303. Elevator frame; 304. Fan; 305. Refrigeration block;

[0029] 4. Fixing components; 401. Fixing bracket; 402. Rotating rod; 403. Fixing rod; 404. Mounting hole; 405. Clamping bracket; 406. Tensioning bracket; 407. Connecting plate; 408. Screw; 409. Reinforcing rod;

[0030] 5. Lock body;

[0031] 6. Reinforcing components; 601. Connecting bracket; 602. Fixing bolt; 603. Rotating block; 604. Locking hole; 605. Mounting bracket; 606. Moving rod;

[0032] 7. Place the cavity. Detailed Implementation

[0033] Reference Figure 1-7The present invention provides an earthquake detection device, comprising a detection equipment component 1, a support component 2 at the lower end of the detection equipment component 1, a cooling component 3 embedded inside the detection equipment component 1, fixing components 4 on both the left and right sides of the front end of the detection equipment component 1, a lock body 5 embedded at the front end of the fixing component 4, a reinforcing component 6 embedded at the rear end of the lock body 5 near the center of the detection equipment component 1, and a placement groove 201 opened on the inner side of the detection equipment component 1.

[0034] As a further implementation of the above technical solution: the seismic detection device adopts a structural design with detection equipment component 1 as the core, combined with multiple components such as support, cooling, and fixing, bringing many advantages. This modular design facilitates independent maintenance and upgrades of each component, reduces overall maintenance costs, and clearly defines the functions of each component: support component 2 ensures stability, cooling component 3 maintains the working environment, and fixing component 4 ensures device safety, effectively improving the reliability and durability of the device in complex seismic monitoring environments.

[0035] Preferably, the testing equipment assembly 1 includes a lower housing 101, an upper housing 102 is hinged to the upper end of the lower housing 101, handles 103 are fixedly connected to both the left and right ends of the lower housing 101, fixing rings 104 are fixedly connected to the front and rear ends of the lower end of the lower housing 101, and an mounting plate 105 is fixedly connected to the upper inner side of the upper housing 102.

[0036] As a further implementation of the above technical solution: the lower housing 101 and the upper housing 102 are connected by a hinge to achieve opening and closing movement. The operator can flip the upper housing 102 upward along the hinge axis to open the device for easy installation, maintenance and use of internal instruments; the handle 103 provides the operator with a gripping point, and the lower housing 101 can be moved by applying force with the hand; the fixing ring 104 can be used to tie ropes and other fasteners. When the device is installed and fixed, the rope passes through the fixing ring 104 and is tightened to fix the device to the support rod 204.

[0037] Preferably, the support component 2 includes a placement groove 201, and mounting rods 202 are placed at both ends of the inner wall of the placement groove 201. Mounting blocks 203 are fixedly connected to the four corners at the lower end of the detection device component 1. Support rods 204 are embedded in the inner side of the mounting rods 202, and damping blocks 205 are fixedly connected to the lower end of the support rods 204.

[0038] As a further implementation of the above technical solution: the mounting rod 202 can be inserted and removed within the placement slot 201. When the seismic detection device needs to be moved or stored, the mounting rod 202 can be pulled out from the fixing slot on the inner wall of the placement slot 201; the mounting block 203 provides a mounting base for the support rod 204. The inclined setting allows the damping block 205 to fit tightly against the ground, and because it is inclined at 15 degrees to the ground, it can disperse some of the force to the ground when subjected to seismic impact, reducing the shaking of the device; the damping block 205 is made of elastic material, and when the device is vibrated, it absorbs and dissipates vibration energy through its own compression and rebound reciprocating motion.

[0039] Preferably, the refrigeration assembly 3 includes a fixing plate 301, a refrigeration unit 302 is fixedly connected to the lower rear side of the fixing plate 301, a riser 303 is provided at the front end of the refrigeration unit 302, a fan 304 is fixedly connected to the inner side of the riser 303, and a refrigeration block 305 is provided at the front end of the fan 304.

[0040] As a further implementation of the above technical solution: the refrigeration unit 302, through the coordinated operation of internal compressors, condensers and other components, compresses, condenses, expands and evaporates the refrigerant in a cycle to transfer heat and cool the device; after the fan 304 is powered on, the fan blades rotate at high speed to generate airflow, which transports the cooling capacity generated by the refrigeration unit 302 to the inside of the device through the air duct. The airflow pushes the cold air on the surface of the cooling block 305 to move, accelerating heat exchange; after absorbing heat from inside the device, the cooling block 305, through the high thermal conductivity of its copper material, quickly transfers the heat to the surface, and is then carried away by the airflow generated by the fan 304.

[0041] Preferably, the fixing component 4 includes a fixing frame 401, a rotating rod 402 is embedded in the inner side of the fixing frame 401, a fixing rod 403 is fixedly connected to the middle of the front end of the fixing frame 401, a locking frame 405 is fixedly connected to both sides of the rotating rod 402, a tensioning frame 406 is rotatably connected to the outer side of the locking frame 405, a reinforcing rod 409 is in close contact with the middle of the outer side of the tensioning frame 406, a connecting plate 407 is fixedly connected to the lower end of the reinforcing rod 409, screws 408 are threadedly connected to the left and right sides of the front end of the connecting plate 407, and the screws 408 penetrate the connecting plate 407 and the lower housing 101 in the testing equipment component 1, the screws 408 are threadedly connected to the lower housing 101 in the testing equipment component 1, and a lock body 5 is embedded in the front end of the fixing component 4.

[0042] As a further implementation of the above technical solution: the rotating rod 402 can rotate within the fixed frame 401. When a fixing device is required, the operator rotates the rotating rod 402, causing the locking frame 405 to rotate around the axis of the rotating rod 402, so that the locking frame 405 fits against the object to be fixed; the tensioning frame 406 is rotatably connected to the outside of the locking frame 405 via a pin. After the locking frame 405 fits against the object, the tensioning frame 406 is rotated to open it outwards, making close contact with the surface of the object to achieve fastening; the reinforcing rod 409 is connected to the tensioning frame 401. Under the pressure of 6, the rigid deformation of the screw 408 generates a reaction force to enhance the fixing effect; the screw 408 is connected by threads and, with the help of tools such as wrenches, is rotated and screwed into the lower housing 101 to fix the connecting plate 407, reinforcing rod 409 and other components to the testing equipment assembly 1; when the hook of the lock body 5 is in the unlocked state, after the hook passes through the mounting hole 404 of the fixing rod 403, it is pressed down to push the hook out of the lock body 5. At this time, the hook can be locked in the mounting hole 404 by rotating the lock cylinder to prevent the fixing assembly 4 from loosening.

[0043] Preferably, the reinforcement component 6 includes a connecting frame 601, with fixing bolts 602 threadedly connected to the four corners of the front end of the connecting frame 601, a rotating block 603 embedded in the inner side of the connecting frame 601, a locking hole 604 provided in the front end of the rotating block 603, and a mounting frame 605 fixedly connected to the rear end of the connecting frame 601, with a moving rod 606 slidably connected to the inner side of the mounting frame 605.

[0044] As a further implementation of the above technical solution: the fixing bolt 602 is connected by a thread and is screwed into the threaded hole at the front end of the connecting frame 601 by a screwdriver or other tools, thereby fixing the connecting frame 601 to the external structure; the rotating block 603 can rotate in the groove or bearing inside the connecting frame 601. When the key of the lock body 5 is inserted into the lock hole 604 and rotated, it drives the rotating block 603 to rotate, thereby driving the moving rod 606 to slide linearly in the slide rail inside the mounting bracket 605 to achieve unlocking or locking.

[0045] Preferably, the mounting plate 105 is rectangular, and heat dissipation holes are provided at the lower end of the mounting plate 105, which are distributed in a rectangular array below the mounting plate 105.

[0046] As a further implementation of the above technical solution: the heat dissipation holes on the mounting plate 105 form an air convection channel under the action of the airflow generated by the fan 304. The heat generated inside the device is transferred to the mounting plate 105 through heat conduction, and then the heat is carried away by the airflow through the heat dissipation holes. Since the heat dissipation holes are distributed in a rectangular array, the airflow can be evenly distributed, thereby improving the heat dissipation efficiency.

[0047] Preferably, the support rod 204 is inclined at 15 degrees to the ground and is cylindrical.

[0048] As a further implementation of the above technical solution: in addition to the adaptive adjustment motion based on the ground tilt setting.

[0049] Preferably, the cooling block 305 is made of copper plate and is fixedly connected to the fixing plate 301.

[0050] As a further implementation of the above technical solution: the cooling block 305 is fixed to the fixing plate 301 by welding, bolt connection or other means. When the cooling component 3 is running, the cooling block 305 remains in a fixed position and performs heat exchange stably, ensuring that the internal temperature of the device is maintained within a suitable range.

[0051] Preferably, the fixing rod 403 has a mounting hole 404 at the middle of its left end, and the hook of the lock body 5 passes through the mounting hole 404 of the fixing rod 403.

[0052] As a further implementation of the above technical solution: the fixing rod 403 remains stationary during the operation of the device, serving as a fixing through hole component for the hook of the lock body 5, and providing support for the locking fixing component 4 of the lock body 5; when installing or removing the lock body 5, the hook passes through the mounting hole 404 for position adjustment and locking.

[0053] Working principle:

[0054] When using this invention, first deploy the device to the detection point, pull out the support rod 204 from the placement slot 201 and install it into the mounting block 203. Since the hole inside the mounting block 203 is set at an angle, after the support rod 204 is installed and fixed, the support rod 204 and the lower housing 101 are also set at an angle, so that the damping block 205 is close to the ground. At the same time, insert the key into the lock body 5, open the lock body 5 and remove it from the fixing rod 403. Rotate the rotating rod 402 of the fixing component 4 to drive the locking bracket 405 to fit against the fixing surface, and then rotate the tensioning bracket 406 to open it and tighten it through the reinforcing rod 409. Then turn the key to rotate the rotating block 603 to move the moving rod 606 and disengage it from the inside of the lower housing 101. The upper housing 102 can be manually opened to install the sensor and closed. Start the refrigeration unit. 302 allows the refrigerant to circulate and dissipate heat, while the fan 304 delivers the cooling energy to the copper cooling block 305 via the riser 303. The cold air carries away the heat through the rectangular array of heat dissipation holes on the mounting plate 105. The sensor is fixed by the mounting plate 105 and converts the seismic waves into electrical signals. After data acquisition, the upper housing 102 is opened to export the data, the fixing component 4 is disassembled, and the support rod 204 is folded and inserted into the placement slot 201. The device is transported by the handle 103, and the fixing ring 104 assists in binding the rope to reduce the transportation space. The entire process is a closed-loop system through the support component 2 to stabilize the base, the fixing component 4 to rigidly connect, the cooling component 3 to maintain the environment, the detection component to collect data, and the reinforcement component 6 to buffer and protect, thus realizing the seismic detection function. The movement mode and structural design of each component are coordinated to ensure the detection accuracy and the reliability of the device.

[0055] Finally, it should be noted that the above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A seismic detection device, comprising a detection equipment assembly (1), characterized in that: The lower end of the testing equipment component (1) is provided with a support component (2), the inside of the testing equipment component (1) is embedded with a cooling component (3), the front left and right sides of the testing equipment component (1) are provided with fixing components (4), the front end of the fixing component (4) is embedded with a lock body (5), the rear end of the lock body (5) near the center of the testing equipment component (1) is embedded with a reinforcing component (6), and the inner side of the testing equipment component (1) is provided with a placement groove (201).

2. The seismic detection device according to claim 1, characterized in that: The testing equipment assembly (1) includes a lower housing (101), the upper end of which is hinged to an upper housing (102). Both the left and right ends of the lower housing (101) are fixedly connected to handles (103). The lower end of the lower housing (101) is fixedly connected to the front and rear ends of the front and rear ends of the front and rear ends of the front and rear ends of the front and rear ends of the rear housing (101). The upper inner side of the upper housing (102) is fixedly connected to an installation plate (105).

3. The seismic detection device according to claim 1, characterized in that: The support assembly (2) includes a placement groove (201), and mounting rods (202) are placed on both the left and right ends of the inner wall of the placement groove (201). Mounting blocks (203) are fixedly connected to the four corners at the lower end of the detection equipment assembly (1). A support rod (204) is embedded in the inner side of the mounting rod (202), and a damping block (205) is fixedly connected to the lower end of the support rod (204).

4. The seismic detection device according to claim 1, characterized in that: The refrigeration component (3) includes a fixing plate (301), a refrigeration unit (302) is fixedly connected to the lower rear side of the fixing plate (301), a heightening frame (303) is provided at the front end of the refrigeration unit (302), a fan (304) is fixedly connected to the inner side of the heightening frame (303), and a refrigeration block (305) is provided at the front end of the fan (304).

5. The seismic detection device according to claim 1, characterized in that: The fixing component (4) includes a fixing frame (401), a rotating rod (402) is embedded in the inner side of the fixing frame (401), a fixing rod (403) is fixedly connected to the middle of the front end of the fixing frame (401), a locking frame (405) is fixedly connected to both sides of the rotating rod (402), a tensioning frame (406) is rotatably connected to the outer side of the locking frame (405), a reinforcing rod (409) is closely contacted to the middle of the outer side of the tensioning frame (406), a connecting plate (407) is fixedly connected to the lower end of the reinforcing rod (409), screws (408) are threadedly connected to the left and right sides of the front end of the connecting plate (407), and the screws (408) penetrate the connecting plate (407) and the lower housing (101) in the testing equipment component (1), the screws (408) are threadedly connected to the lower housing (101) in the testing equipment component (1), and a lock body (5) is embedded in the front end of the fixing component (4).

6. The seismic detection device according to claim 1, characterized in that: The reinforcement component (6) includes a connecting frame (601), with fixing bolts (602) threaded at the four corners of the front end of the connecting frame (601), a rotating block (603) embedded in the inner side of the connecting frame (601), a locking hole (604) provided in the front end of the rotating block (603), and a mounting frame (605) fixedly connected to the rear end of the connecting frame (601), with a moving rod (606) slidably connected to the inner side of the mounting frame (605).

7. The seismic detection device according to claim 1, characterized in that: The mounting plate (105) is rectangular, and the lower end of the mounting plate (105) is provided with heat dissipation holes, which are arranged in a rectangular array below the mounting plate (105).

8. The seismic detection device according to claim 3, characterized in that: The support rod (204) is inclined at 15 degrees to the ground and is cylindrical.

9. A seismic detection device according to claim 4, characterized in that: The cooling block (305) is made of copper plate and is fixedly connected to the fixing plate (301).

10. A seismic detection device according to claim 5, characterized in that: The fixing rod (403) has a mounting hole (404) in the middle of its left end, and the hook of the lock body (5) passes through the mounting hole (404) of the fixing rod (403).